The present invention relates to an internal antenna for a mobile handset comprising: a feeding pin for power supply; an upper radiating patch connected to the feeding pin, having a first upper patch portion and a second upper patch portion, which receive power supply from the feeding pin and resonate at different frequency bands respectively; a side radiating patch receiving power supply from the feeding pin, extended along the side of the upper radiating patch and vertically apart from the upper radiating patch by certain distance; and a short pin, one end of which is in contact with the upper radiating patch and the side radiating patch and the other end of which is grounded. According to the present invention, a bandwidth to be used can be broadened without increasing space for a general small size dual band Planar Inverted F antenna PIFA.
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16. A mobile handset having an antenna, wherein said antenna comprises:
a feeding pin for power supply;
an upper radiating patch connected to the feeding pin, having a first upper patch portion and a second upper patch portion, which receive power supply from the feeding pin and resonate at different frequency bands respectively;
a side radiating patch receiving power supply from the feeding pin, extended along the side of the upper radiating patch, wherein at least a portion of the side radiating patch is formed to be vertical to the upper radiating patch; and
a short pin, one end of which is in contact with the upper radiating patch and the side radiating patch and the other end of which is grounded.
1. A mobile handset having an antenna, wherein said antenna comprises:
a feeding pin for power supply;
an upper radiating patch connected to the feeding pin, having a first upper patch portion and a second upper patch portion, which receive power supply from the feeding pin and resonate at different frequency bands respectively;
a side radiating patch receiving power supply from the feeding pin, extended along the side of the upper radiating patch, wherein at least a portion of the side radiating patch is formed to be diagonal to the upper radiating patch; and
a short pin, one end of which is in contact with the upper radiating patch and the side radiating patch and the other end of which is grounded.
2. A mobile handset of
3. A mobile handset of
4. A mobile handset of
a first side patch portion for resonating at a same frequency band as the first upper patch portion; and
a second side patch portion for resonating at a same frequency band as the second upper patch portion.
5. A mobile handset of
6. A mobile handset of
7. A mobile handset of
8. A mobile handset of
9. A mobile handset of
10. A mobile handset of
11. A mobile handset of
12. A mobile handset of
13. A mobile handset of
14. A mobile handset of
15. A mobile handset of
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This is a continuation of application Ser. No. 10/810,367, now U.S. Pat. No. 6,995,717, that was filed on Mar. 26, 2004 claiming the priority of the Korean Patent Application No. 10-2003-0082706 filed on Nov. 20, 2003.
1. Field of the Invention
The present invention relates to an internal antenna for a mobile handset and, particularly, to a planar inverted F antenna (PIFA), which is a type of the internal antenna for a mobile handset. By using the internal antenna of a mobile handset according to the present invention, the broad bandwidth can be obtained without increasing space for inclusion of a general small-size dual band PIFA.
2. Prior Art
As there is great increase in the use of mobile handsets, researches are conducted actively on antennas for the purpose of raising reception sensitivity of wireless signals. Ordinarily, a PIFA has acceptable characteristics in terms of the Specific Absorption Rate (SAR), a standard to measure damage of microwave to human body, and is easy to be included in a light, thin, simple and small mobile unit. Thus, such PIFA is generally used in a mobile handset.
In such PlEA, of the entire beam generated by a current induced in the radiating patch, beam directed to the GND is re-induced and the beam directed to the human body is attenuated. Thus, SAR characteristics are improved and the beam induced to the direction of the radiating patch 1 is strengthened, so that the PIFA has advantages in that the PIFA has desirable directivity and it may decrease a size of the antenna.
On the other hand, as service providers utilize various frequency bands, the PIFA in a dual band antenna type (Hereinafter, dual band PIFA) that may utilize different frequency bands is being developed actively.
As shown in
Even though the first patch portion 12 and the second patch portion 14 make up the same radiating patch 10, they are distinguished into two different radiating patch domains and resonate at different frequency bands. Thus, the first patch portion 12 and the second patch portion 14 may operate at two different frequency bands. Here, the relevant frequency bands at which the respective patch portions 12, 14 operate may be changed by adjusting the respective lengths L1, L2 of the patch portions.
In these conventional PIFAs, however, the relevant bandwidths used by such PIFAs are generally narrow and thus the conventional PIFAs are not adequate for the use in the personal communication service (PCS) or cellular frequency band, for which the demand is increasing daily. Further, if the lengths of patch portions (e.g., L1, L2) are increased in order to broaden the bandwidth, the antenna would become too large to be included inside of a mobile handset.
The object of the present invention is to provide an internal antenna for a mobile handset, which may ensure broad bandwidth of operating frequency without increasing space for inclusion of a general small-size dual band PIFA.
In order to achieve the object of the present invention, there is provided an internal antenna for a mobile handset, including: a feeding pin for power supply; an upper radiating patch connected to the feeding pin, having a first upper patch portion and a second upper patch portion, which receive power supply from the feeding pin and resonate at different frequency bands respectively; a side radiating patch receiving power supply from the feeding pin, extended along the side of the upper radiating patch and vertically apart from the upper radiating patch by certain distance; and a short pin, one end of which is in contact with the upper radiating patch and the side radiating patch and the other end of which is grounded.
Preferably, the side radiating patch may include: a first side patch portion for resonating at a same frequency band as the first upper patch portion; and a second side patch portion for resonating at a same frequency band as the second upper patch portion.
Preferably, at least one of the first upper patch portion and the second upper patch portion may be formed to have a shape of a meander line.
Preferably, the side radiating patch may have a form of a stick and have a shape corresponding to an outer line of the upper radiating patch.
Preferably, the first upper patch portion and the first side patch portion may resonate at different frequencies respectively.
Preferably, the second upper patch portion and the second side patch portion may resonate at different frequencies respectively.
Preferably, impedance of the first upper patch portion, the second upper patch portion, the first side patch portion and the second side patch portion may change according to a location of a feeding point.
Preferably, impedance of the first upper patch portion, the second upper patch portion, the first side patch portion and the second side patch portion may change according to a width of the short pin.
Preferably, operating frequencies of the first upper patch portion, the second upper patch portion, the first side patch portion and the second side patch portion may change respectively according to lengths of the first upper patch portion, the second upper patch portion, the first side patch portion and the second side patch portion.
Preferably, lengths of the first upper patch portion, the second upper patch portion, the first side patch portion and the second side patch portion may be respectively equal to a quarter wavelength of their own operating frequencies.
* * * Descriptions of codes for important parts in the drawings * * *
3:
Short Pin
5:
Feeding Pin
9:
Feeding Point
20:
Upper Radiating Patch
22:
First Upper Patch Portion
24:
Second Upper Patch Portion
30:
Side Radiating Patch
32:
First Side Patch Portion
34:
Second Side Patch Portion
Reference will now be made in detail to the internal antenna for a mobile handset according to preferred embodiments of the present invention as illustrated in the accompanying drawings.
As shown in
The upper radiating patch 20 includes a first upper patch portion 22 and a second upper patch portion 24 that resonate at different frequency bands. A first side patch portion 32 and a second side patch portion 34 corresponding respectively to the first upper patch portion 22 and the second upper patch portion 24 are further included, resulting in broadening bandwidth.
Specifically, the upper radiating patch 20 includes the first upper patch portion 22 having a length L1 operable at a PCS frequency band and the second upper patch portion 24 having a length L2 operable at a cellular frequency band. Preferably, lengths of the first upper patch portion 22 and the second upper patch portion 24 are designed to be approximately a quarter wavelength of a relevant frequency band at which the antenna operates, taking into account thickness, width and height of installation of the relevant patch portion.
For example, if the upper radiating patch 20 is designed to have a length 37 mm and an entire width 9 mm and if it is installed to be apart from the GND by 7 mm, the first upper patch portion 22 operating at the PCS frequency band may be designed by adjusting its length L1 and its width within the scope of the upper radiating patch 20, but a length of the second upper patch portion 24 operating at the cellular frequency band must be increased. Accordingly, the second upper patch portion 24 is designed by the meandering method to increase the length through which a current may flow and thus the length of the second upper patch portion L2 may be approximately a quarter wavelength of the cellular frequency band.
As shown in
Preferably, lengths of the first side patch portion 32 and the second side patch portion 34 are designed to be approximately a quarter wavelength of the relevant frequency band at which the relevant antenna operates, taking into account thickness, width and dielectric constant of the relevant patch and are adjusted to have optimum lengths through simulations.
Each side patch portion 32, 34 is coupled with the corresponding upper patch portion 22, 24. The first upper patch portion 22 and the first side patch portion 32 operate at the PCS frequency band of from 1750 MHz to 1870 MHz. The second upper patch portion 24 and the second side patch portion 34 operate at the cellular frequency band of from 824 MHz to 894 MHz.
Here, the upper patch portion and the corresponding side patch portion operate at the same frequency band but do not operate at the same specific frequencies. They operate at adjacent different frequencies respectively within the same frequency band. For example, if the second upper patch portion 24 operating within the frequency band of 824 MHz to 894 MHz resonates at the frequencies around 850 MHz, the corresponding second side patch portion 34 is designed to resonate at the frequencies around 870 MHz, thus broadening bandwidth used for receipt of cellular frequencies.
In the antenna according to the present invention, if power is supplied to the upper radiating patch 20 and the side radiating patch 30 through the feeding point 9 connected to the feeding pin 5, they are short-circuited with the GND by the short pin 3, accomplishing impedance matching.
Further, impedance of each patch portion 22, 24, 32, 34 may be changed by changing a location of the feeding point and by adjusting a width of the short pin. The operating frequencies of each patch portion 22, 24, 32, 34 may be changed by adjusting lengths of the relevant patch portion L1, L2, L4, L5. Thus, at the time of designing the antenna, it is preferable to find out optimum lengths of the patch portion L1, L2, L4, L5 through simulations of operating frequency characteristics as the relevant length of the patch is changed.
However, as shown in
Given the foregoing, the internal antenna according to the present invention may be designed to have the broad bandwidth if L4 is adjusted first and then L5 is adjusted. Further, in the PCS frequency band, as the resonant frequencies of the first upper patch portion 22 and the first side patch portion 32 are combined to broaden the relevant bandwidth by approximately 140 MHz and thus may satisfy the bandwidth of a general commercial PCS frequencies (1750 MHz-1870 MHz).
As described above, according to the present invention, the side radiating patch is added to the PIFA having the dual band and operates together with the upper radiating patch. Accordingly, the present invention may broaden bandwidth of the operating frequency without increasing space for installing a general small-size dual band PIFA.
The foregoing embodiments are merely exemplary and are not to be construed as limiting the present invention. Many alternatives, modifications and variations will be apparent to those skilled in the art.
Patent | Priority | Assignee | Title |
7385556, | Dec 22 2006 | CLOUD NETWORK TECHNOLOGY SINGAPORE PTE LTD | Planar antenna |
7961149, | Aug 24 2007 | AsusTek Computer Inc. | Antenna structure |
9484618, | Oct 17 2007 | INTERDIGITAL MADISON PATENT HOLDINGS | Antenna configuration for electronic devices |
Patent | Priority | Assignee | Title |
6111545, | Feb 18 1999 | Nokia Technologies Oy | Antenna |
6448932, | Sep 04 2001 | LAIRD CONNECTIVITY LLC | Dual feed internal antenna |
6476769, | Sep 19 2001 | Nokia Technologies Oy | Internal multi-band antenna |
6498586, | Dec 30 1999 | RPX Corporation | Method for coupling a signal and an antenna structure |
6552686, | Sep 14 2001 | RPX Corporation | Internal multi-band antenna with improved radiation efficiency |
6618011, | Oct 13 2000 | RPX Corporation | Antenna transducer assembly, and an associated method therefor |
6680705, | Apr 05 2002 | Qualcomm Incorporated | Capacitive feed integrated multi-band antenna |
6831607, | Jan 28 2003 | LAIRDTECHNOLOGEIS, INC | Single-feed, multi-band, virtual two-antenna assembly having the radiating element of one planar inverted-F antenna (PIFA) contained within the radiating element of another PIFA |
6867746, | Jun 03 2002 | KAGA ELECTRONICS CO , LTD | Combined EMI shielding and internal antenna for mobile products |
6995717, | Nov 20 2003 | PANTECH CORPORATION | Internal antenna for a mobile handset |
20020080076, | |||
JP10209732, | |||
KR20020026361, | |||
KR20030003647, | |||
KR20030046049, | |||
KR20030053526, | |||
WO111721, | |||
WO250948, | |||
WO9849742, |
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